Fujitsu VFP-12HU
Fujitsu VFP-12HU
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Fujitsu VFP-12HU

Manufacturer No:

VFP-12HU

Manufacturer:

Fujitsu

Utmel No:

922-VFP-12HU

Package:

-

ECAD Model:

Description:

VFP-12HU datasheet pdf and Signal Relays, Up to 2 Amps product details from Fujitsu stock available at Utmel

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  • Prepare productStep1:Prepare product
  • Vacuum packagingStep2:Vacuum packaging
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VFP-12HU information

Specifications
Fujitsu VFP-12HU technical specifications, attributes, parameters and parts with similar specifications to Fujitsu VFP-12HU.
  • Type
    Parameter
  • Surface Mount

    having leads that are designed to be soldered on the side of a circuit board that the body of the component is mounted on.

    NO
  • Mounting Feature

    a process by which the operating system makes files and directories on a storage device (such as hard drive, CD-ROM, or network share) available for users to access via the computer's file system.

    PANEL MOUNT
  • Weight
    55 g
  • Number of Terminals
    4
  • End Contact Material

    End Contact Material refers to the conductive material used at the termination points of electronic components, such as connectors or switches, where electrical connections are made. This material significantly impacts the component's performance, including its conductivity, corrosion resistance, and overall longevity. Common materials used for end contacts include gold, silver, nickel, and copper, chosen based on the specific application requirements and environmental conditions. The choice of end contact material is crucial for ensuring reliable and efficient electrical connections in electronic assemblies.

    Silver Alloy
  • Coil Voltage-Nom
    12 V
  • Operating Temperature-Min
    -30 °C
  • Operating Temperature-Max
    65 °C
  • Manufacturer Part Number
    VFP-12HU
  • Manufacturer
    FUJITSU Component Ltd
  • Part Life Cycle Code
    Obsolete
  • Ihs Manufacturer
    FUJITSU COMPONENT LTD
  • CoilResistance
    120 Ω
  • ElectricalLife
    100000 Cycle(s)
  • Risk Rank
    5.82
  • JESD-609 Code

    The "JESD-609 Code" in electronic components refers to a standardized marking code that indicates the lead-free solder composition and finish of electronic components for compliance with environmental regulations.

    e1
  • ECCN Code

    An ECCN (Export Control Classification Number) is an alphanumeric code used by the U.S. Bureau of Industry and Security to identify and categorize electronic components and other dual-use items that may require an export license based on their technical characteristics and potential for military use.

    EAR99
  • Terminal Finish

    Terminal Finish refers to the surface treatment applied to the terminals or leads of electronic components to enhance their performance and longevity. It can improve solderability, corrosion resistance, and overall reliability of the connection in electronic assemblies. Common finishes include nickel, gold, and tin, each possessing distinct properties suitable for various applications. The choice of terminal finish can significantly impact the durability and effectiveness of electronic devices.

    TIN SILVER COPPER
  • Additional Feature

    Any Feature, including a modified Existing Feature, that is not an Existing Feature.

    PANEL MOUNTABLE
  • Reach Compliance Code

    Reach Compliance Code refers to a designation indicating that electronic components meet the requirements set by the Registration, Evaluation, Authorization, and Restriction of Chemicals (REACH) regulation in the European Union. It signifies that the manufacturer has assessed and managed the chemical substances within the components to ensure safety and environmental protection. This code is vital for compliance with regulations aimed at minimizing risks associated with hazardous substances in electronic products.

    unknown
  • Reference Standard

    In the context of electronic components, the term "Reference Standard" typically refers to a specific set of guidelines, specifications, or requirements that serve as a benchmark for evaluating the quality, performance, and characteristics of the component. These standards are established by organizations such as the International Electrotechnical Commission (IEC), the Institute of Electrical and Electronics Engineers (IEEE), or specific industry bodies.Reference standards help ensure consistency and interoperability among different components, as they provide a common framework for manufacturers, designers, and users to adhere to. They outline parameters such as electrical properties, mechanical dimensions, environmental conditions, and safety considerations that the component must meet to be considered compliant.By referencing these standards, manufacturers can design and produce components that meet industry-recognized criteria, which in turn helps users select the right components for their applications with confidence. Adhering to reference standards also facilitates regulatory compliance and promotes overall quality and reliability in electronic systems.

    CSA; UL; VDE
  • Body Length or Diameter

    Body length or diameter in electronic components refers to the physical dimensions of a component's housing, typically measured in millimeters or inches. It indicates the size of the component that affects its fit within a circuit board or system. This parameter is crucial for ensuring compatibility with the design and mounting of electronic devices. It can impact heat dissipation, electrical performance, and overall assembly efficiency. Accurate measurement of body length or diameter is essential for proper component selection and placement in electronic applications.

    35 mm
  • Body Breadth

    Body breadth in electronic components refers to the width of the physical body of a component, such as a resistor, capacitor, or integrated circuit. This measurement is crucial for ensuring proper fit within a circuit board or enclosure. It can affect the component's thermal performance, mechanical stability, and overall compatibility with other components in a design. Body breadth is typically specified in millimeters or inches and is an important factor in the selection and design of electronic assemblies.

    32.2 mm
  • Physical Dimension

    The parameter "Physical Dimension" in electronic components refers to the measurable size and shape characteristics of a component. This includes dimensions such as length, width, height, and diameter, which are critical for ensuring proper fit and integration into electronic circuits and systems. Physical dimensions also influence the component's performance, thermal management, and overall reliability in application environments. Understanding these dimensions is essential for designers to maintain compatibility with circuit boards and reduce issues related to space constraints.

    35mm x 32.2mm x 24.1mm
  • Insulation Resistance

    The measurement of insulation resistance is carried out by means of a megohmmeter – high resistance range ohmmeter. A general rule-of-thumb is 10 Megohm or more.

    1000000000 Ω
  • Sealing

    Sealing in electronic components refers to the process of enclosing and protecting sensitive parts from environmental factors such as moisture, dust, and chemicals. This is essential for ensuring the reliability and longevity of the components. Sealing is achieved through various methods, including the use of potting compounds, encapsulation materials, or hermetic sealing techniques. Proper sealing enhances the performance and durability of electronic devices in demanding applications.

    RT2
  • Termination Type

    Termination Type in electronic components refers to the method used to connect the component to a circuit board or other electronic devices. It specifies how the component's leads or terminals are designed for soldering or mounting onto a PCB. Common termination types include through-hole, surface mount, and wire lead terminations. The termination type is an important consideration when selecting components for a circuit design, as it determines how the component will be physically connected within the circuit. Different termination types offer varying levels of durability, ease of assembly, and suitability for specific applications.

    SCREW AND SOLDER
  • Relay Type

    In electronic components, the parameter "Relay Type" refers to the specific classification or categorization of a relay based on its design, functionality, and application. Relays are electromechanical devices that are used to control the switching of circuits by opening or closing contacts in response to an electrical signal. The relay type typically indicates the specific characteristics of the relay, such as its switching mechanism (e.g., electromagnetic, solid-state), contact configuration (e.g., SPST, DPDT), operating voltage, current rating, and intended use (e.g., power relays, signal relays, automotive relays). Understanding the relay type is important for selecting the right relay for a particular application to ensure proper functionality and reliability.

    POWER/SIGNAL RELAY
  • Contact Current(AC)-Max

    Contact Current (AC) - Max is a parameter used to specify the maximum alternating current that can safely flow through the contacts of an electronic component, such as a relay or a switch. This parameter is crucial for ensuring the proper functioning and longevity of the component, as exceeding the maximum contact current can lead to overheating, arcing, and potential damage to the contacts. Manufacturers provide this specification to help users determine the compatibility of the component with their specific application requirements. It is important to adhere to the specified maximum contact current to prevent malfunctions and ensure the reliability of the electronic system.

    30 A
  • Contact (AC) Max Rating R Load

    The parameter "Contact (AC) Max Rating R Load" in electronic components refers to the maximum alternating current (AC) rating that the contact can handle when connected to a resistive load. This specification is important for determining the maximum current that can safely flow through the contact without causing damage or failure. It is typically expressed in amperes (A) and helps ensure that the component can reliably handle the electrical load it is designed for. Manufacturers provide this rating to help users select the appropriate component for their specific application to prevent overheating, arcing, or other potential issues related to excessive current flow.

  • Operate Time

    The time interval between the instant of the occurrence of a specified input condition to a system and the instant of completion of a specified operation.

    20 ms
  • Release Time

    In telecommunication, release time is the time interval for a circuit to respond when an enabling signal is discontinued

    5 ms
  • Coil Power

    Coil Power in electronic components refers to the amount of power consumed by a coil or inductor when an electrical current passes through it. It is a measure of the energy dissipated as heat within the coil due to its resistance. The coil power is typically specified in watts and is important to consider when designing circuits to ensure that the coil can handle the power without overheating. Properly managing coil power is crucial for the overall performance and reliability of electronic systems.

    1200 mW
  • Contact Voltage(AC)-Max

    Contact Voltage(AC)-Max refers to the maximum alternating current voltage that an electronic component can safely handle at its contact points. This parameter is critical for ensuring the safe and effective operation of devices in AC circuits. Exceeding this voltage can lead to failure or damage of the component, making it essential for designers to adhere to specified voltage ratings.

    250 V
  • Contact/Output Supply Type

    Contact/Output Supply Type is a parameter used to describe the type of connection or output supply required for an electronic component to function properly. This parameter specifies the specific type of contact or supply needed for the component to receive power or transmit signals. It can include details such as the number of pins, voltage levels, current requirements, and communication protocols. Understanding the Contact/Output Supply Type is crucial for selecting compatible components and ensuring proper functionality within an electronic system.

    AC
  • Relay Action

    Relay action refers to the type of mechanical movement performed by a relay in response to an electrical signal. It typically describes how the relay transitions between its open and closed states to either allow or interrupt the flow of current in a circuit. Relay action can be classified as normally open or normally closed, indicating the default state of the relay contacts before any current is applied. The speed and responsiveness of this action can significantly affect the performance of the overall circuit in which the relay is used.

    MOMENTARY
  • Coil/Input Supply Type

    Coil/Input Supply Type refers to the voltage and current specifications required to operate the coil in electromagnetic components such as relays and solenoids. This parameter indicates whether the component is designed to operate with AC or DC voltage sources and specifies the nominal voltage level for optimal performance. Understanding the Coil/Input Supply Type is essential for ensuring proper operation and compatibility with circuit designs.

    DC
  • PCB Hole Count

    The "PCB Hole Count" parameter in electronic components refers to the number of holes present in the printed circuit board (PCB) that are used for mounting and connecting the component. These holes are typically used for inserting leads or pins of the component and soldering them to the PCB for electrical connection. The PCB hole count is an important specification as it determines how the component will be physically mounted and connected to the circuit board during the assembly process. Manufacturers provide this information to help designers and engineers ensure proper placement and alignment of components on the PCB for optimal performance and reliability of the electronic system.

    4
  • Dielectric Strength Between Open Contacts

    The parameter "Dielectric Strength Between Open Contacts" in electronic components refers to the maximum voltage that can be applied across open contacts without causing electrical breakdown or arcing. It is a measure of the insulation capability of the material between the contacts. When the dielectric strength is exceeded, the insulating material may break down, leading to a short circuit or other electrical issues. This parameter is important in ensuring the reliability and safety of electronic components, especially in high-voltage applications where maintaining proper insulation is critical. Manufacturers provide dielectric strength specifications to help designers and engineers select components that can withstand the required voltage levels without failure.

    1200 Vrms
  • Input Switching Control Type

    Input Switching Control Type refers to the method or mechanism used to control the switching of inputs in electronic components such as switches, relays, or multiplexers. This parameter determines how the selection of different input channels is managed within the component. Common types of input switching control include manual control, where a user physically selects the input channel, and automatic control, where the switching is done based on predetermined criteria or signals. The choice of input switching control type can impact the functionality, flexibility, and ease of use of the electronic component in various applications.

    Random
  • Dielectric Strength Between Coil and Contacts

    The parameter "Dielectric Strength Between Coil and Contacts" in electronic components refers to the maximum voltage that can be applied between the coil and the contacts without causing electrical breakdown or insulation failure. It is a critical specification that indicates the insulation capability of the component and its ability to withstand high voltage levels. A higher dielectric strength value indicates better insulation properties and increased reliability in preventing electrical arcing or short circuits between the coil and contacts. This parameter is important in ensuring the safe and reliable operation of the electronic component in various applications where high voltages may be present.

    4000 Vrms
  • Contact (AC) Max Power Rating R Load

    The parameter "Contact (AC) Max Power Rating R Load" in electronic components refers to the maximum power that can be safely handled by the contacts when carrying an alternating current (AC) load. This rating is important for ensuring that the contacts do not overheat or fail when carrying the specified power level. It is typically expressed in watts and helps determine the suitability of the component for a particular application where AC power is involved. Manufacturers provide this specification to guide users in selecting components that can reliably handle the required power levels without experiencing damage or performance degradation.

  • Relay Function

    In electronic components, the term "Relay Function" refers to the capability of a relay to control the flow of electrical current between two or more circuits. Relays are electromechanical devices that use an electromagnet to mechanically switch electrical contacts, allowing them to open or close a circuit. The relay function is essential for applications where there is a need to isolate or control the flow of electrical signals, such as in automation systems, power distribution, and telecommunications. By activating or deactivating the relay, users can control the operation of connected devices or systems, making relays a versatile component in various electronic and electrical applications.

    SPST
  • Coil Voltage(DC)-Max

    Coil Voltage(DC)-Max refers to the maximum direct current voltage that can be applied to the coil of an electromagnetic component, such as a relay or solenoid. This parameter is critical to ensure the safe and reliable operation of the component, as exceeding this voltage can cause overheating, insulation breakdown, or damage to the coil. It is important for designers to consider this value when integrating such components into electronic circuits to prevent failure and ensure proper functionality. Proper adherence to the Coil Voltage(DC)-Max specification helps maintain the longevity and performance of the device.

    12 V
  • Coil Current(DC)-Max

    The parameter "Coil Current(DC)-Max" in electronic components refers to the maximum direct current (DC) that can safely flow through the coil of the component without causing damage. This specification is important for components such as relays, solenoids, and inductors that rely on coils to function. Exceeding the maximum coil current can lead to overheating, increased resistance, and potential failure of the component. It is crucial to adhere to this specification to ensure the reliable operation and longevity of the electronic component.

    0.1 A
  • Relay Form

    In electronic components, a relay is an electromechanical device that is used to control the flow of electricity in a circuit. A relay form refers to the physical configuration or layout of the relay, which can vary depending on the specific application and requirements. The form factor of a relay can include the number of pins, the size and shape of the casing, and the arrangement of the internal components. Different relay forms are designed to accommodate various voltage and current ratings, switching speeds, and environmental conditions. It is important to select the appropriate relay form to ensure compatibility and optimal performance in a given electronic system.

    1 FORM A
  • Coil Operate Voltage(DC)

    Coil Operate Voltage (DC) refers to the direct current voltage level required to energize the coil of an electromagnetic component, such as a relay or solenoid. This voltage is essential for activating the component, allowing it to perform its intended function. If the applied voltage is below the specified coil operate voltage, the component may not engage properly or may fail to operate altogether. Conversely, applying a voltage significantly higher than the rated value may result in overheating or damage to the coil.

    8.4 V
  • Coil Release Voltage(DC)

    Coil Release Voltage(DC) in electronic components refers to the specific voltage level at which a relay or contactor coil will release or disengage its contacts. It is the minimum voltage required for the coil to return to its non-energized state, thereby breaking the circuit. This parameter is critical for ensuring reliable operation of the device, as it dictates the conditions under which the coil ceases to hold the load. Knowing the coil release voltage helps in designing circuits that operate effectively within the specified range.

    1.2 V
  • Terminal Length

    In electronic components, "Terminal Length" refers to the physical length of the terminal or lead of a component, such as a resistor, capacitor, or integrated circuit. It is the distance from the body of the component to the end of the terminal where connections are made. The terminal length is an important parameter as it determines how much space is required for soldering or connecting the component to a circuit board or other components. It also affects the overall size and layout of the circuit board. Manufacturers provide terminal length specifications to ensure proper installation and compatibility with the intended application.

    0.0041 inch
  • Contact (AC) Max Power Rating M Load

    The parameter "Contact (AC) Max Power Rating M Load" in electronic components refers to the maximum power that can be safely handled by the contact when carrying an alternating current (AC) load. This rating is important for ensuring that the contact can effectively transmit power without overheating or causing damage. It is typically specified in watts or VA (volt-amperes) and helps determine the suitability of the component for a particular application. It is crucial to adhere to this rating to prevent potential failures or malfunctions in the electronic system.

  • Body Height

    In electronic components, "Body Height" refers to the vertical dimension of the component's physical body or package. It is the measurement from the bottom of the component to the top, excluding any leads or terminals. Body Height is an important parameter to consider when designing circuit boards or enclosures to ensure proper fit and clearance. It is typically specified in datasheets or technical drawings provided by the component manufacturer. Understanding the Body Height of electronic components is crucial for proper placement and integration within a circuit or system.

    24.1 mm
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